[0001] The present invention generally relates to a method and an apparatus for braking
a vehicle and more particularly, to a method and an apparatus which allows a vehicle
to be both regeneratively and frictionally braked, thereby allowing the vehicle to
be braked in a desired manner while allowing energy to be conserved.
[0002] Typically, a vehicle is selectively slowed or stopped (i.e., "braked") by the use
of brake assemblies which selectively and frictionally engage the wheels of the vehicle,
effective to slow or stop the vehicle. While these assemblies do selectively brake
or slow the vehicle, relatively large amounts of energy are lost in the form of heat
as the vehicle is braked or slowed. Moreover, it is desirable to substantially prevent
or reduce the likelihood of having the rear brakes become fully engaged before the
front brakes achieve the same state or condition (e.g., to reduce the likelihood of
premature rear brake engagement).
[0003] A second braking approach, referred to as "Electronic Brake Force Distribution" or
"EBD", often utilizes "anti-lock braking" or "ABS" assemblies, sensors, and values
to reduce the likelihood of "premature" rear brake engagement by electronically and
dynamically controlling the amount of braking provided by the rear and front brakes.
Other more typical approaches are also used to achieve this desired braking distribution,
such as by the use of a passive hydraulic proportional valve assembly. The anti-lock
braking system and these other assemblies may be jointly referred to as "brake distribution
assemblies" since they each use a dynamically created force distribution pattern which
may be expressed in terms of force, torque, or power to allow a vehicle to be selectively
braked in a distributive manner.
[0004] Regenerative type braking desirably and "non-frictionally" slows or stops the vehicle
while concomitantly allowing electrical charge, or other forms of energy, to be created
and stored for later use, thereby improving the overall vehicular operating efficiency
while allowing the vehicle to be selectively braked. While regenerative braking is
becoming more widely used, the combination of regenerative type braking and the previously
delineated anti-lock or "distributive" braking approaches, although highly desirable,
are not used since the brake distribution profiles created by these brake distribution
assemblies are not modified to account for the braking effects of the regenerative
braking assemblies and, as such, the combination may not provide the desired braking.
[0005] US 5 967 621 describes a braking system in which regenerative braking force is gradually
increased with any braking deficiency being compensated with hydraulic braking force.
[0006] The present invention overcomes these drawbacks and provides a braking system which
utilizes both regenerative and anti-lock or distributive type braking strategies and
assemblies in a manner which allows for regenerative energy recovery and which allows
a vehicle to be selectively braked in a desired manner while providing for the benefits
associated with diverse types of braking strategies to be employed within a vehicle.
[0007] According to a first aspect of the invention there is provided a vehicular braking
assembly characterised in that the braking assembly comprises a first regenerative
braking assembly, a second frictional braking assembly and a controller which is operable
under stored program control, which receives a request for a certain amount of braking
and which is coupled to the first regenerative braking assembly and to the second
frictional braking assembly, wherein the controller receives the request for a certain
amount of braking and, in response to the request, generates a first signal to the
regenerative braking assembly to provide an amount of regenerative braking and a second
signal to the frictional braking assembly to provide an amount of frictional braking
which is based upon the amount of regenerative braking, wherein the regenerative braking
is applied to a first pair of wheels and the frictional braking is applied to the
first pair of wheels and a second pair of wheels to provide a desired brake torque
distribution between the first pair of wheels and the second pair of wheels.
[0008] The frictional braking assembly may be a distribution braking assembly.
[0009] The vehicular braking assembly may further comprise an antilock braking assembly
which is coupled to the controller.
[0010] The controller may be operable to cause the antilock braking assembly to be activated
only after the frictional brake assembly has been activated.
[0011] The first pair of wheels may be resident upon a passive axle.
[0012] The vehicular braking assembly may apply a certain amount of brake torque to the
first pair of wheels and then may apply a certain amount of brake torque to a second
pair of wheels which are coupled to a driven axle.
[0013] The regenerative braking assembly may comprise a motor and an energy storage device.
[0014] The energy storage device may be a battery.
[0015] According to a second aspect of the invention there is provided a method for braking
a vehicle characterised in that the method comprises the steps of requesting a certain
amount of braking, fulfilling at least a portion of the certain amount of requested
braking by regeneratively braking the vehicle and frictionally braking the vehicle
according to a certain distribution pattern, wherein the regenerative braking is applied
to a first pair of wheels and the frictional braking is applied to the first pair
of wheels and a second pair of wheels to provide a desired brake torque distribution
between the first pair of wheels and the second pair of wheels in the event that only
a portion of the certain amount of requested braking was provided by the regenerative
braking, thereby fulfilling the request.
[0016] The step of frictionally braking the vehicle may comprise the step of frictionally
braking a passive axle.
[0017] There is provided a method for operating a vehicle of the type having a first pair
of wheels which are operatively disposed upon a first axle, a second pair of wheels
which are disposed upon a second axle, a motor which is coupled to the second axle
and to an energy storage device, the motor and the energy storage device cooperatively
and selectively being operable to provide a certain amount of regenerative braking
to the vehicle characterised in that the method comprises the steps of creating a
plurality of relationships, each of the plurality of relationships having a respective
first value which is representative of a unique amount of braking of the first axle
and a respective second value which is representative of a unique amount of braking
of the second axle, generating a brake request signal which represents a certain amount
of desired vehicular braking, using the brake request signal to select one of the
plurality of relationships, comparing the first value of the selected one of the plurality
of relationships with the certain amount of regenerative braking, causing a first
amount of braking to be applied to the first axle and a second amount of braking to
be applied to the second axle when the first value is larger than the certain amount
of regenerative braking and causing a third amount of braking to be applied to the
first axle and a fourth amount of braking to be applied to the second axle when the
first value is smaller than the certain amount of regenerative braking.
[0018] The energy storage device may be a battery.
[0019] The first amount of braking may be a value equal to the difference between the first
value and the certain amount of regenerative braking. The second amount of braking
may be the second value. The third amount of braking may be a null amount. The fourth
amount of braking may be the difference between the certain amount of desired vehicular
braking and the certain amount of regenerative braking.
[0020] The first, second, and fourth amounts of braking may be achieved by the use of frictional
distributive braking.
[0021] The method may further comprise the step of comparing the certain amount of desired
vehicular braking and the certain amount of regenerative braking and causing all of
the certain amount of desired vehicular braking to be achieved only by regenerative
braking if the certain amount of regenerative braking is greater than the certain
amount of desired vehicular braking.
[0022] The invention will now be described by way of example with reference to the accompanying
drawing of which:-
Figure 1 is a block diagram of a vehicle incorporating a brake assembly which is made
in accordance with the teachings of the preferred embodiment of the invention;
Figure 2 is a flowchart including a sequence of operational steps which cooperatively
comprises the methodology of the preferred embodiment of the invention; and
Figure 3 is a graph of a typical brake distribution relationship which is used by
the brake assembly of the preferred embodiment of the invention.
[0023] Referring now to Figure 1, there is shown a vehicle 10 which is made in accordance
with the teachings of the preferred embodiment of the invention. It should be realized
that while vehicle 10 comprises a rear wheel drive type vehicle, the apparatus and
methodology of the preferred embodiment of the invention may be applicable to a front
wheel drive vehicle, to an all wheel drive vehicle, to a hybrid electric vehicle,
and to an electric vehicle in the manner which is more fully set forth below. Moreover,
it should be appreciated that only the relevant portions of vehicle 10 are shown in
Figure 1 and that the invention is applicable to a wide variety of diverse vehicular
architectures.
[0024] Particularly, vehicle 10 includes a torque generator, such as but not limited to
an internal combustion engine ("ICE") 12, an energy storage device, such as but not
limited to an electrical battery 14, a front axle 16 (i.e., the axle below the driver
of the vehicle (not shown)), a pair of rear axles or "halfshafts" 20, 22 (axles 20,
22 may be replaced by a single axle), a differential assembly 24, a motor 26, a clutch
28, a transmission assembly 30, a first pair of wheels 32, 34 which are operatively
disposed upon opposed ends of the front axle 16, a second pair of wheels 36, 38 which
are respectively disposed upon rear axles 20, 22, and frictional brake assemblies
40, 42, 44, and 46 which are respectively and operatively disposed upon wheels 32,
34, 36, and 38. Brake assemblies 40, 42, 44 and 46 may be of the anti-lock type.
[0025] The vehicle 10 further includes a controller or control assembly 48, a selectively
depressible brake pedal member 50 and a selectively depressible acceleration pedal
or member 52 which are each physically and communicatively coupled to the controller
or control assembly 48. Controller 48 may comprise or form a computer controller which
is operable under stored program control and, in one alternate non-limiting embodiment,
may comprise multiple controllers which are in a communicative relationship (i.e.,
there may be a brake controller, a powertrain controller, and a battery controller
communicatively coupled to each other by at least one electrical bus).
[0026] The combination of the controller 48 and the brake assemblies 40, 42, 44 and 46 cooperatively
comprise the brake assembly of the preferred embodiment of the invention.
[0027] The vehicle 10 further includes frame members 54, 56 which are respectively coupled
to the axles 16, 20; and 16, 22. It should further be realized that storage device
14 may be replaced with a flywheel or other storage assembly and that axles 20, 22
cooperatively form with the differential 24 a "driven axle" while front axle 16 forms
a "passive" or "non-driven" axle. Moreover, as is further shown, internal combustion
engine 12 is coupled to the clutch 28 by powertrain member 66, and the transmission
30 is coupled to the differential assembly 24 and to the clutch 28 by respective powertrain
members 62, 64.
[0028] As shown, controller 48 is operatively coupled to the brake assemblies 40-46. Brake
assemblies 40-46 also, for example and without limitation, may comprise a hydraulic
braking system which may be controlled by controller 48 by the use of a hydraulic
actuator (not shown). Further, controller 48 is operatively coupled to the battery
14, to the clutch 28, to the motor 26, and to the transmission assembly 30. The motor
26 is also coupled to the transmission assembly 30 and the storage device 14.
[0029] In operation, torque generator 12 provides torque which is communicated to the differential
24 through the clutch 28, transmission 30, and powertrain members 66, 64 and 62. The
torque causes the axles 20, 22 to rotate and allows the vehicle 10 to be driven and
selectively propelled.
[0030] As is more fully delineated below with respect to the methodology or flowchart 90,
a desire or demand to slow or stop (e.g., "brake") the vehicle 10 is received by the
controller 48 after the brake member 50 has been depressed and/or after the accelerator
member 52 has been lifted. The amount of such depression or lifting corresponds to
a certain brake request (e.g., a certain amount of braking force, torque, or power),
and this request is communicated to the controller 48 by respective pedal or member
sensors (not shown).
[0031] For example, the top position of the brake member 50 may correspond to a braking
amount of zero, the bottom or lowest depressed position of the brake member 50 may
correspond to the maximum amount of allowable braking, and the requested braking amount
may vary, as the member 50 is depressed, by an amount proportional to the distance
that the brake member 50 moves from the top position to the bottom position (e.g.,
when the member 50 resides half-way between the top and bottom positions, the requested
braking amount is one-half of the total allowable braking amount).
[0032] A similar proportionality applies to the accelerator member 52. That is, as the member
52 is moved from the bottom position (no braking is requested) to the top position
(the vehicle is given no acceleration), the amount of requested braking or slowing
of the vehicle 10 proportionally increases in proportion to the amount of distance
travelled by the member 52 and/or to the position occupied by the member 52.
[0033] The controller 48, upon receipt of movement signals from members 50, 52, generates
signals to the motor 26 and to the transmission assembly 30 which is coupled to powertrain
member 62, thereby causing the motor 26 to function as a generator and place electrical
charge within the battery 14 in order to regeneratively brake the vehicle 10.
[0034] That is, motor 26 uses the rotational energy of the member 62 to generate electrical
energy and to thereby reduce the rotational energy of the wheels 36, 38.
[0035] Additionally, controller 48 may also generate and send signals to motor 26 to use
electrical energy stored within battery 14 to supplement the torque provided by the
internal combustion engine 12 during acceleration (e.g., when accelerator member 52
is depressed) by providing additional torque to powertrain member 62. In the preferred
embodiment of the invention, only when additional braking is desired (i.e., an amount
of braking which exceeds the amount of braking provided by regeneration), does the
controller 48 selectively activate the frictional braking assemblies 40-46 according
to a previously created and stored brake distribution pattern, which accounts for
the regenerative braking supplied by motor 26, thereby allowing for a desired amount
of braking to be achieved while concomitantly allowing energy to be conserved.
[0036] The methodology of the preferred embodiment of the invention will now be explained
in greater detail below with respect to flowchart 90 of Figure 2.
[0037] As shown, methodology 90 includes a first step 92 in which controller 48 receives
a braking request from members 50, 52 (or from sensors which are respectively attached
to these members 50, 52). Step 94 follows step 92 and, in this step 94, the controller
48 determines the amount of braking torque, force, or power which is required, or
desired, by the driver based upon the position of the requesting members 50, 52.
[0038] In alternative embodiments, the vehicle 10 may include other brake request members
or assemblies. The desired amount of braking torque is temporarily stored in controller
48 for use in subsequent steps of methodology 90.
[0039] Step 95 follows step 94 and, in this step 95, controller 48 determines the maximum
provided or available amount of regenerative braking torque that the motor 26 and
battery 14 can generate or provide (i.e., the regenerative braking limit is the lesser
of the maximum amount of torque that the motor 26 may generate and the maximum amount
of electrical energy that the battery 14 will accept from motor 26). This amount may
be related to such factors as battery temperature, motor temperature, battery state
of charge, and/or a variety of other factors.
[0040] For example, and without limitation, the current state of charge of the battery may
be compared to the known and maximum state of charge which may be contained within
the battery (e.g., which may be obtained from the battery manufacturer) and this difference
may represent the maximum amount of electrical energy which may be accepted by the
battery 14. The maximum amount of torque provided by the motor 26 may be acquired
by the manufacturer of the motor 26 and stored within controller 48. These values
may change with temperature and other factors. Controller 48 temporarily stores the
regenerative braking torque limit for subsequent steps in methodology 90. Step 94
is also followed by step 96 in which the controller 48 accesses the previously created
(or dynamically calculated) and stored brake force (or torque or power) distribution
100 which is shown by way of example and without limitation, in Figure 3.
[0041] Particularly, distribution 100 includes several relationships or values, such as
relationship 102, which provides a certain desired distribution or pattern of the
required "stopping" or slowing force. Each discrete point on the distribution 102
includes a braking value for the front axle 16 (i.e., for brake assembles 40, 42),
such as value 107, and a braking value for the rear axles 20, 22 (i.e., for braking
assemblies 44, 46), such as value 109, and the sum of these two values, such as values
107, 109, substantially equals the total requested braking amount which may be expressed
in terms of torque, force, or power.
[0042] This pattern or distribution 102 may be created for each unique type of vehicle 10
based upon theoretical or experimental data in which certain known or predetermined
total braking amounts are sequentially requested of the vehicle 10. Different braking
ratios between the front and rear assemblies 40, 42 and 44, 46, for each such braking
request, are applied/utilized and reviewed, and a single desired ratio or proportion
is chosen for each requested amount of braking. These chosen ratios are stored within
controller 48, thereby forming a distribution, such as distribution 102.
[0043] For example, relationship 102 was created for a typical front wheel drive vehicle
weighing 1500 kg with a front to rear weight ratio or proportionality of approximately
60% and 40%. As shown, by way of example and without limitation, when the total required
braking force is about 4500 Newtons, it is desired to have about 3000 Newtons provided
by the front brakes 40, 42 and about 1500 Newtons provided by the rear brakes 44,
46. Moreover these ratios or proportionalities may also be developed by conventional
techniques which are currently used by conventional and commercially available anti-lock
braking assemblies. Hence, in step 96, controller 48 uses the total requested braking
value and determines, from the graph or brake force distribution relation 102, the
amount of desired front and rear braking force which must be created. Controller 48
temporarily stores these driven axle and passive axle brake distributions for subsequent
steps in methodology 90.
[0044] Step 98 also follows step 94 and, in this step 98, the controller 48 determines whether
the total amount of requested braking exceeds the amount which may be solely provided
by regeneration. If the amount of requested braking exceeds the regeneration limit
determined in step 96, step 98 is followed by step 106.
[0045] Alternatively, step 98 is followed by step 110 in which the controller 48 causes
the motor 26 to act as a generator and to provide electrical charge to the battery
14 and to therefore cooperate with the battery 14 to regeneratively brake the vehicle
10 by the requested amount. Steps 111 and 113 follow step 110 in which braking assemblies
40, 42 and 44, 46 remain respectively deactivated (i.e., both the driven axles 20,
22 and the passive axle 16 are not subject to frictional braking torque).
[0046] Alternatively, in another non-limiting embodiment, steps 111 and 113 may sequentially
occur, as shown. Step 113 is followed by step 92 in which the controller 48 determines
whether additional braking is required. The methodology 90, in the most preferred,
although non-limiting embodiment, is adapted to be accomplished one within each "control
loop" of the processor or controller 48.
[0047] In step 106, the controller 48 determines whether the desired value of the torque
of the driven axles 20, 22 (e.g., the value 109 which is determined in step 96) exceeds
the amount of braking which is provided by regeneration. If the desired value of the
torque of the driven axle(s) exceeds that provided by regeneration, then step 106
is followed by step 114. Alternatively, step 106 is followed by step 116 in which
the controller 48 causes the motor 26 to supply a maximum amount of electrical charge
to the battery 14 and to thereby provide the maximum allowable amount of regenerative
braking. Step 116 is followed by step 118 in which brake assemblies 44, 46 remain
substantially deactivated (i.e., all braking applied to drive axles 20, 22 is accomplished
by regenerative braking), and step 118 is followed by step 120 in which the brake
assemblies 40, 42 are activated. Particularly, brake assemblies 40, 42 provide a certain
amount of braking which is substantially equal to the difference between the requested
amount of braking (as determined in step 94) and the total allowable regenerative
braking available (as determined in step 95). Step 120 is followed by step 92.
[0048] Step 114 is substantially similar to step 116 and step 114 is followed by step 130
in which brake assemblies 44, 46 are activated to provide a certain amount of braking
which is equal to the difference between the desired amount of braking of the driven
axles 20, 22 (e.g., value 107) and the total amount of allowable regenerative braking.
Step 130 is followed by step 132 in which the braking assemblies 40, 42 are activated
and provide a certain amount of braking which is equal to the desired "non-driven"
axle braking value (e.g., value 107). Step 132 is followed by step 92. In this manner,
both regenerative and frictional braking may be concurrently employed within vehicle
10, thereby allowing the vehicle 10 to have the benefits of both types of braking
functionalities.
[0049] In a second embodiment, conventional anti-lock brake control assemblies may be used
and, in this second embodiment, steps 92, 94, 95, 96, 98 and 110, 111 and 113 remain
substantially identical to that which is shown in Figure 2. However, steps 106, 114,
116, 118, 120, 130, and 132 are replaced by a step of frictionally braking the non-driven
axle 16 until a threshold of locking is sensed or until a certain amount of braking
is accomplished and then allowing the anti-lock braking system to become activated
and to perform its normal electronic brake force distribution or (EBD) function/operation.
[0050] Therefore in summary a vehicular braking system is provided which overcomes some
or all of the previously delineated drawbacks of prior vehicular braking systems and
strategies. The vehicular braking system selectively utilizes both regenerative braking
and frictional braking in a manner which allows a vehicle to be selectively slowed
or stopped.
[0051] It is to be understood that the invention is not limited to the exact construction
or method which has been illustrated and discussed above, but that various changes
and modifications may be made without departing from the scope of the invention.
[0052] It will for example be appreciated that controller 48 may be used in combination
with a conventional motor 26, brake assemblies 40-46 and battery 14 which may be operatively
disposed within a conventional vehicle 10.
[0053] Alternatively, controller 48, clutch 28, motor 26, and battery 14 may cooperatively
form a brake control assembly which may be deployed within an existing vehicle 10
and, more particularly, motor 26 and battery 14 cooperate with assembly 30 to form
a regeneration assembly.
1. A vehicular braking assembly characterised in that the braking assembly comprises a first regenerative braking assembly (14, 26), a
second frictional braking assembly (40, 42, 44, 46) and a controller (48) which is
operable under stored program control, which receives a request for a certain amount
of braking and which is coupled to the first regenerative braking assembly (14, 26)
and to the second frictional braking assembly (40, 42, 44, 46), wherein the controller
(48) receives the request for a certain amount of braking and, in response to the
request, generates a first signal to the regenerative braking assembly (14, 26) to
provide an amount of regenerative braking and a second signal to the frictional braking
assembly (40, 42, 44, 46) to provide an amount of frictional braking which is based
upon the amount of regenerative braking, characterised in that the regenerative braking is applied to a first pair of wheels (36, 38) and the frictional
braking is applied to the first pair of wheels (36, 38) and a second pair of wheels
(32, 34) to provide a desired brake torque distribution between the first pair of
wheels (36, 38) and the second pair of wheels (32, 34).
2. A vehicular braking assembly as claimed in claim 1 wherein the vehicular braking assembly
further comprises an antilock braking assembly which is coupled to the controller
(48).
3. A vehicular braking assembly as claimed in claim 1 wherein the second pair of wheels
(32, 34) is resident upon a passive axle (16).
4. A vehicular braking assembly as claimed in claim 3 wherein the vehicular braking assembly
applies a certain amount of brake torque to the second pair of wheels (32, 34) and
then applies a certain amount of brake torque to the first pair of wheels (36, 38)
which are coupled to a driven axle (20, 22, 24).
5. A vehicular braking assembly as claimed in claim 1 wherein the regenerative braking
assembly comprises a motor (26) and an energy storage device (14).
6. A method for braking a vehicle (10) characterised in that the method comprises the steps of requesting a certain amount of braking, fulfilling
at least a portion of the certain amount of requested braking by regeneratively braking
the vehicle (10) and frictionally braking the vehicle (10) according to a certain
distribution pattern, characterised in that the regenerative braking is applied to a first pair of wheels (36, 38) and the frictional
braking is applied to the first pair of wheels (36, 38) and a second pair of wheels
(32, 34) to provide a desired brake torque distribution between the first pair of
wheels (36, 38) and the second pair of wheels (32, 34) in the event that only a portion
of the certain amount of requested braking was provided by the regenerative braking,
thereby fulfilling the request.
1. Fahrzeugbremssystem, dadurch gekennzeichnet, daß das Bremssystem eine erste Regenerativbremseinheit ((14, 26) aufweist, eine zweite
Reibungsbremseinheit (40, 42, 44, 46) und eine Steuerung (48), welche von einem gespeicherten
Steuerprogramm gesteuert betrieben werden kann, welche eine Forderung nach einem bestimmten
Betrag an Bremswirkung empfängt und mit der ersten Regenerativbremseinheit (14, 26)
und der zweiten Reibungsbremseinheit (40, 42, 44, 46) gekoppelt ist, worin die Steuerung
(48) eine Forderung nach einer bestimmten Bremswirkung empfängt und in Reaktion auf
diese Forderung ein erstes Signal an die Regenerativbremseinheit (14, 26) abgibt,
derart, daß diese einen Grad an regenerativer Bremswirkung liefert, und ein zweites
Signal an die Reibungsbremseinheit (40, 42, 44, 46) abgibt, derart, daß diese einen
Grad an Reibungsbremswirkung liefert, der auf dem Grad an regenerativer Bremswirkung
basiert, dadurch gekennzeichnet, daß die regenerative Bremswirkung an einem ersten Räderpaar (36, 38) angelegt wird, und
die Reibungsbremswirkung an dem ersten Räderpaar (36, 38) und an einem zweiten Räderpaar
(32, 34) angelegt wird, und zwar derart, daß eine gewünschte Bremsmomentverteilung
zwischen dem ersten Räderpaar (36, 38) und dem zweiten Räderpaar (32, 34) erzielt
wird.
2. Fahrzeugbremssystem nach Anspruch 1, worin die Fahrzeugbremsanlage außerdem eine mit
der Steuerung (48) gekoppelte blockiergeschützte Bremsanlage beinhaltet.
3. Fahrzeugbremssystem nach Anspruch 1, worin das zweite Räderpaar (32, 34) auf einer
passiven Achse (16) sitzt.
4. Fahrzeugbremssystem nach Anspruch 3, worin das Fahrzeugbremssystem ein bestimmtes
Maß an Bremsmoment am zweiten Räderpaar (32, 34) anlegt und dann ein bestimmtes Maß
an Bremsmoment am ersten Räderpaar (36, 38) anlegt, das mit einer Antriebsachse (20,
22, 24) verbunden ist.
5. Fahrzeugbremssystem nach Anspruch 1, worin die Regenerativbremseinheit einen Motor
(26) und eine Energiespeichervorrichtung (14) beinhaltet.
6. Verfahren zum Bremsen eines Fahrzeuges (10), dadurch gekennzeichnet, daß das Verfahren folgende Schritte beinhaltet: Fordern eines bestimmten Maßes an Bremswirkung,
Erfüllen wenigstens eines Teils der Forderung nach einem bestimmten Maß an Bremswirkung
durch regeneratives Bremsen des Fahrzeuges (10) und Reibungsbremsen des Fahrzeuges
(10) gemäß einem bestimmten Verteilungsmuster,
dadurch gekennzeichnet, daß die regenerative Bremsung an einem ersten Räderpaar (36, 38) angelegt wird, und die
Reibungsbremsung an dem ersten Räderpaar (36, 38) und einem zweiten Räderpaar (32,
34) angelegt wird, um eine Soll- oder gewünschte Bremsmoment-Verteilung zwischen dem
ersten Räderpaar (36, 38) und dem zweiten Räderpaar (32, 34) zu erzeugen, wenn nur
ein Teil des geforderten bestimmten Maßes an Bremswirkung durch die Regenerativbremsung
geboten werden kann, so daß dann die Forderung erfüllt wird.
1. Ensemble de freinage de véhicule caractérisé en ce que l'ensemble de freinage comprend un premier ensemble de freinage à régénération (14,
26), un second ensemble de freinage à friction (40, 42, 44, 46) et un contrôleur (48)
qui peut être mis en oeuvre sous la commande d'un programme mémorisé, lequel reçoit
une demande d'une certaine quantité de freinage et qui est reliée au premier ensemble
de freinage à régénération (14, 26) et au second ensemble de freinage à friction (40,
42, 44, 46), dans lequel le contrôleur (48) reçoit la demande d'une certaine quantité
de freinage et, en réponse à la demande, génère un premier signal vers l'ensemble
de freinage à régénération (14, 26), pour procurer une quantité de freinage à régénération
et un second signal à l'ensemble de freinage à friction (40, 42, 44, 46) pour procurer
une quantité de freinage à friction qui est fondée sur la quantité de freinage à régénération,
caractérisé en ce que le freinage à régénération est appliqué à une première paire de roues (36, 38) et
le freinage à friction est appliqué à la première paire de roues (36, 38) et à une
seconde paire de roues (32, 34) pour procurer une répartition de couple de freinage
désirée entre la première paire de roues (36, 38) et la seconde paire de roues (32,
34).
2. Ensemble de freinage de véhicule selon la revendication 1, dans lequel l'ensemble
de freinage de véhicule comprend en outre un ensemble de freinage antiblocage qui
est relié au contrôleur (48).
3. Ensemble de freinage de véhicule selon la revendication 1, dans lequel la seconde
paire de roues (32, 34) est située sur un essieu passif (16).
4. Ensemble de freinage de véhicule selon la revendication 3, dans lequel l'ensemble
de freinage de véhicule applique une certaine valeur de couple de freinage à la seconde
paire de roues (32, 34) et applique alors une certaine valeur de couple de freinage
à la première paire de roues (36, 38) qui sont accouplées avec un essieu moteur (20,
22, 24).
5. Ensemble de freinage de véhicule selon la revendication 1, dans lequel l'ensemble
de freinage à régénération comprend un moteur électrique (26) et un dispositif de
stockage d'énergie (14).
6. Procédé destiné au freinage d'un véhicule (10), caractérisé en ce que le procédé comprend les étapes consistant à demander une certaine quantité de freinage,
satisfaire au moins une partie de la certaine quantité de freinage demandée en freinant
de façon régénérative le véhicule (10) et en freinant par friction le véhicule (10)
selon un certain profil de répartition, caractérisé en ce que le freinage à régénération est appliqué à une première paire de roues (36, 38) et
le freinage à friction est appliqué à la première paire de roues (36, 38) et à une
seconde paire de roues (32, 34) pour procurer une répartition de couple de freinage
désirée entre la première paire de roues (36, 38) et la seconde paire de roues (32,
34) dans le cas où seulement une partie de la certaine quantité de freinage demandée
a été procurée par le freinage à régénération, en satisfaisant ainsi la demande.